Reliability Enhancement of a Double-Switch Single-Ended Primary Inductance–Buck Regulator in a Wind-Driven Permanent Magnet Synchronous Generator Using a Double-Band Hysteresis Current Controller
Abstract
:1. Introduction
- When operating at the same duty cycle rate, the DSSB regulator provides greater voltage gain than step-up SEPIC regulators and other conventional DC-DC regulators.
- The comparison study conducted for this work indicates that DSSB is more practical than conventional buck and SEPIC regulators, particularly for high-power renewable-energy systems, electric vehicles, and solar panels.
- The double-PI hysteresis control approach with the well-known MPPT technique is an additional benefit, which is normally very straightforward for a DSSB regulator structure. This configuration can significantly reduce the level of harmonics generated at the input and output in comparison to the current boost regulators, SEPIC, and bucking/boosting circuits. This leads to a wider output DC voltage range, greater power capacity, greater current rating capacity, and improved efficiency. Consequently, the regulator can reach its maximum power point, which is contingent only upon the mutual multiplication of the input/output DSSB voltages and currents [1,2].
- According to the comparative and analytical study that is carried out in this paper, DSSB is more practical and has better dynamic performance than other DC-DC regulators, especially for high-power renewable-energy systems, electric vehicles, and solar panels, than the conventional boost regulator.
- The hysteresis current-mode control of the source and load currents of the DSSB regulator is an additional benefit of this paper. This control technique is normally very straightforward for any double-switch-based DC-DC regulator structure since it includes a dual-hysteresis current methodology with two PI current regulators.
- The perturb and observe approach (MPPT technique) used in conjunction with hysteresis current-mode control enhances the performance of the field-oriented VSI. This effectively maximizes the output power supplied to the load and helps achieve the maximum power point of the WECS system in different operating conditions.
- A simulation study is conducted in the environments of Simulink/MATLAB and Ansoft Simplorer to verify the efficacy of the suggested system.
2. Modeling, Analysis, and Control of the DSSB Regulator
The DSSB Regulator
3. Creation of the Equivalent Circuit and Equations for the PMSG Model
Mathematical Model of PMSG
4. Modeling of Variable-Speed Wind Turbine (VSWT)
5. Double-Hysteresis Current Control of DSSB Regulator
5.1. Control of the DSSB Input Voltage
5.2. Control of the DSSB Input Choke Current
6. Front-Loading Inverter Control at the Grid/Load Side
6.1. VSI Field-Oriented Control-Based Decoupled Current Controller in dq Reference Frame
6.2. Determination of the Decoupled Current PI Controllers
6.3. Effect of LCL Filter Cables between the Grid and the Inverter
7. Simulation Results
7.1. WECS with PMSG, DSSB, and VSI Supplying RL () through LCL Filters
7.2. WECS with PMSG, DSSB, and VSI Supplying Triple-Phase AC Grid through LCL Filters
8. Conclusions
- A recently adopted hysteresis current-mode-controlled double-switch SEPIC–buck regulator (DSSB) with a dual-lead PI controller is examined and explained. This is achieved using mathematical analysis and simulation in SIMULINK/MATLAB.
- The main objectives of this are to compensate for wind speed variation-induced voltage instability and to track the maximum active power that can be injected into the series transmission line (LCL filter shunt impedance) from the grid and the PMSG using the hysteresis-regulated DSSB regulator.
- This paper also presents a dq current-controlled voltage source inverter (VSI) with two proposed PI controllers for current error elimination.
- To ascertain whether the performance of the front-loading VSI controller and DSSB regulator is satisfactory, the system performance is assessed under both normal and variable operating conditions as it is used to supply an AC triple-phase grid and a triple-phase RL. It is shown that the proposed WECS system with the DSSB regulator and VSI has very good control dynamic quality because it responds very accurately to step-change variations in the wind profile. MATLAB and Simplorer are used to verify the simulation.
- Additionally, the high performance of the recommended DSSB regulator during the turbine-side zero-wind-speed fault is demonstrated. During the zero-wind-speed fault, the DSSB source current and its output voltage—the VSI’s DC link voltage—are maintained within a safe range. Every indicator falls between the typical ranges.
- Using the double-hysteresis current control in conjunction with the dq-current control of the voltage source inverter, the DSSB regulator tracks and regulates its input variables, and the voltage and current generated by the rectifier. Thus, the suggested DSSB regulator improves the monitoring of the maximum power point and efficiently maximizes the output power supplied to the load.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameter | Symbol | Real Value |
---|---|---|
Input voltage | Vs | 50 V |
Input choke | L1 | 50 mH |
Shunt choke | L3 | 50 mH |
Output choke | L2 | 50 mH |
Smoothing capacitor | Cs | 1 mF |
Shunt capacitor | Cm | 470 μF |
Shunt capacitor | C1 | 470 μF |
Output capacitor | Co | 1 mF |
Load resistance | R | 10 Ω |
Switching frequency | f | 10 kHz |
Parameter | Real Value |
---|---|
DC link voltage | 6000 V–12,000 V |
Grid phase-to-phase voltage | 6000 V |
Grid internal inductance | 16.58 mH |
Grid internal resistance | 0.8929 Ω |
Parameters of the LCL Kalman filter on the inverter side | 1 mH and 0.5 Ω |
Parameters of the LCL Kalman filter on the grid side | 1 mH and 0.5 Ω |
Filter capacitance | 5 mF |
Filter resistance | 0.5 Ω |
Grid frequency | 50 Hz |
Inverter frequency | 10 kHz |
Parameter | Symbol | Real Value |
---|---|---|
Input choke | L1 | 100 mH |
Shunt choke | L2 | 10 mH |
Output choke | L3 | 670 μH |
Smoothing capacitor | Cs | 470 μF |
Shunt capacitor | Cm | 470 μF |
Shunt capacitor | C1 | 470 μF |
Output capacitor | Co | 5 mF |
Load resistance | R | 10 Ω |
Switching frequency | f | 10 kHz |
Wind Turbine Parameters | |
---|---|
Assessed power | 12.3 kW |
Assessed wind speed | 12 m/s |
Cut-in speed | 4 m/s |
Cut-out speed | 24 m/s |
Air density | 1.225 kg/m3 |
Power factor | 0.85 |
Turbine rotor radius | 1.3 m |
PMSG Parameters | |
Assessed power | 1.1 MW |
Assessed voltage | 3.3 KV |
Number of pole pairs | 3 |
Stator resistive element, Rs | 0.0485 Ω |
d-component of synchronous inductance | 0.395 × 103 H |
q-component of synchronous inductance | 0.395 × 103 H |
Rotor flux, λf | 0.1194 Web |
Rotor flux position when theta = 0 | 90° behind phase A axis |
Power factor | 0.85 |
Parameter | Symbol | Real Value |
---|---|---|
Nominal phase-to-phase voltage | VgL | 680 V |
Active power | Pg | 10 kW |
Inductive reactive power | Qg | 100 VAR |
Parameter | Real Value |
---|---|
Phase-to-phase grid voltage | 680 V |
Grid frequency | 50 Hz |
Grid source inductance | 16.58 mH |
Grid source resistance | 0.8929 Ω |
Inverter frequency | 10 kHz |
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Emar, W.; Alzgool, M.; Mansour, I. Reliability Enhancement of a Double-Switch Single-Ended Primary Inductance–Buck Regulator in a Wind-Driven Permanent Magnet Synchronous Generator Using a Double-Band Hysteresis Current Controller. Energies 2024, 17, 4868. https://doi.org/10.3390/en17194868
Emar W, Alzgool M, Mansour I. Reliability Enhancement of a Double-Switch Single-Ended Primary Inductance–Buck Regulator in a Wind-Driven Permanent Magnet Synchronous Generator Using a Double-Band Hysteresis Current Controller. Energies. 2024; 17(19):4868. https://doi.org/10.3390/en17194868
Chicago/Turabian StyleEmar, Walid, Mais Alzgool, and Ibrahim Mansour. 2024. "Reliability Enhancement of a Double-Switch Single-Ended Primary Inductance–Buck Regulator in a Wind-Driven Permanent Magnet Synchronous Generator Using a Double-Band Hysteresis Current Controller" Energies 17, no. 19: 4868. https://doi.org/10.3390/en17194868
APA StyleEmar, W., Alzgool, M., & Mansour, I. (2024). Reliability Enhancement of a Double-Switch Single-Ended Primary Inductance–Buck Regulator in a Wind-Driven Permanent Magnet Synchronous Generator Using a Double-Band Hysteresis Current Controller. Energies, 17(19), 4868. https://doi.org/10.3390/en17194868